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CVE-2021-47128— Linux kernel 安全漏洞

一分钟漏洞结论

影响对象
Linux Linux
利用判断
尚无明确在野利用证据,仍需结合暴露面评估
建议动作
优先检查厂商安全公告和参考链接中的修复版本;无法立即升级时,限制受影响服务暴露并加强监测。

Linux kernel是美国Linux基金会的开源操作系统Linux所使用的内核。 Linux kernel 存在安全漏洞,该漏洞源于 bpf, lockdown, audit 模块存在有问题的 SELinux 锁定权限检查。

AI 预测 7.5 利用难度: 较易 EPSS 0.18% · P7

影响版本矩阵 8

厂商产品 版本范围状态
Linux Linux 59438b46471ae6cdfb761afc8c9beaf1e428a331< ff5039ec75c83d2ed5b781dc7733420ee8c985fc affected
59438b46471ae6cdfb761afc8c9beaf1e428a331< acc43fc6cf0d50612193813c5906a1ab9d433e1e affected
59438b46471ae6cdfb761afc8c9beaf1e428a331< ff40e51043af63715ab413995ff46996ecf9583f affected
5.6 affected
< 5.6 unaffected
5.10.43≤ 5.10.* unaffected
5.12.10≤ 5.12.* unaffected
5.13≤ * unaffected
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一、 漏洞 CVE-2021-47128 基础信息

漏洞信息

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Vulnerability Title
bpf, lockdown, audit: Fix buggy SELinux lockdown permission checks
来源: CVE Program / CVE List V5
Vulnerability Description
In the Linux kernel, the following vulnerability has been resolved: bpf, lockdown, audit: Fix buggy SELinux lockdown permission checks Commit 59438b46471a ("security,lockdown,selinux: implement SELinux lockdown") added an implementation of the locked_down LSM hook to SELinux, with the aim to restrict which domains are allowed to perform operations that would breach lockdown. This is indirectly also getting audit subsystem involved to report events. The latter is problematic, as reported by Ondrej and Serhei, since it can bring down the whole system via audit: 1) The audit events that are triggered due to calls to security_locked_down() can OOM kill a machine, see below details [0]. 2) It also seems to be causing a deadlock via avc_has_perm()/slow_avc_audit() when trying to wake up kauditd, for example, when using trace_sched_switch() tracepoint, see details in [1]. Triggering this was not via some hypothetical corner case, but with existing tools like runqlat & runqslower from bcc, for example, which make use of this tracepoint. Rough call sequence goes like: rq_lock(rq) -> -------------------------+ trace_sched_switch() -> | bpf_prog_xyz() -> +-> deadlock selinux_lockdown() -> | audit_log_end() -> | wake_up_interruptible() -> | try_to_wake_up() -> | rq_lock(rq) --------------+ What's worse is that the intention of 59438b46471a to further restrict lockdown settings for specific applications in respect to the global lockdown policy is completely broken for BPF. The SELinux policy rule for the current lockdown check looks something like this: allow <who> <who> : lockdown { <reason> }; However, this doesn't match with the 'current' task where the security_locked_down() is executed, example: httpd does a syscall. There is a tracing program attached to the syscall which triggers a BPF program to run, which ends up doing a bpf_probe_read_kernel{,_str}() helper call. The selinux_lockdown() hook does the permission check against 'current', that is, httpd in this example. httpd has literally zero relation to this tracing program, and it would be nonsensical having to write an SELinux policy rule against httpd to let the tracing helper pass. The policy in this case needs to be against the entity that is installing the BPF program. For example, if bpftrace would generate a histogram of syscall counts by user space application: bpftrace -e 'tracepoint:raw_syscalls:sys_enter { @[comm] = count(); }' bpftrace would then go and generate a BPF program from this internally. One way of doing it [for the sake of the example] could be to call bpf_get_current_task() helper and then access current->comm via one of bpf_probe_read_kernel{,_str}() helpers. So the program itself has nothing to do with httpd or any other random app doing a syscall here. The BPF program _explicitly initiated_ the lockdown check. The allow/deny policy belongs in the context of bpftrace: meaning, you want to grant bpftrace access to use these helpers, but other tracers on the system like my_random_tracer _not_. Therefore fix all three issues at the same time by taking a completely different approach for the security_locked_down() hook, that is, move the check into the program verification phase where we actually retrieve the BPF func proto. This also reliably gets the task (current) that is trying to install the BPF tracing program, e.g. bpftrace/bcc/perf/systemtap/etc, and it also fixes the OOM since we're moving this out of the BPF helper's fast-path which can be called several millions of times per second. The check is then also in line with other security_locked_down() hooks in the system where the enforcement is performed at open/load time, for example, open_kcore() for /proc/kcore access or module_sig_check() for module signatures just to pick f ---truncated---
来源: CVE Program / CVE List V5
CVSS Information
N/A
来源: CVE Program / CVE List V5
Vulnerability Type
N/A
来源: CVE Program / CVE List V5
Vulnerability Title
Linux kernel 安全漏洞
来源: 中国国家信息安全漏洞库 CNNVD
Vulnerability Description
Linux kernel是美国Linux基金会的开源操作系统Linux所使用的内核。 Linux kernel 存在安全漏洞,该漏洞源于 bpf, lockdown, audit 模块存在有问题的 SELinux 锁定权限检查。
来源: 中国国家信息安全漏洞库 CNNVD
CVSS Information
N/A
来源: 中国国家信息安全漏洞库 CNNVD
Vulnerability Type
N/A
来源: 中国国家信息安全漏洞库 CNNVD

受影响产品

厂商 产品 影响版本 CPE 订阅
Linux Linux 59438b46471ae6cdfb761afc8c9beaf1e428a331 ~ ff5039ec75c83d2ed5b781dc7733420ee8c985fc -
Linux Linux 5.6 -

二、漏洞 CVE-2021-47128 的公开POC

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三、漏洞 CVE-2021-47128 的情报信息

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CVE-2021-47128 其他参考 (3)

同批安全公告 · Linux · 2024-03-15 · 共 26 条

CVE-2021-47111 8.8 HIGH Linux kernel 安全漏洞
CVE-2021-47131 8.1 HIGH Linux kernel 安全漏洞
CVE-2021-47135 7.8 HIGH Linux kernel 安全漏洞
CVE-2021-47112 7.8 HIGH Linux kernel 安全漏洞
CVE-2021-47129 7.8 HIGH Linux kernel 安全漏洞
CVE-2021-47123 7.8 HIGH Linux kernel 安全漏洞
CVE-2021-47124 7.8 HIGH Linux kernel 安全漏洞
CVE-2021-47126 7.8 HIGH Linux kernel 安全漏洞
CVE-2021-47132 7.5 HIGH Linux kernel 安全漏洞
CVE-2021-47130 7.5 HIGH Linux kernel 安全漏洞
CVE-2021-47109 7.5 HIGH Linux kernel 安全漏洞
CVE-2021-47113 7.1 HIGH Linux kernel 安全漏洞
CVE-2021-47122 Linux kernel 安全漏洞
CVE-2021-47134 Linux kernel 安全漏洞
CVE-2021-47133 Linux kernel 安全漏洞
CVE-2021-47127 Linux kernel 安全漏洞
CVE-2021-47125 Linux kernel 安全漏洞
CVE-2021-47121 Linux kernel 安全漏洞
CVE-2021-47120 Linux kernel 安全漏洞
CVE-2021-47119 Linux kernel 安全漏洞

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IV. Related Vulnerabilities

V. Comments for CVE-2021-47128

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